A proteomic approach reveals the variation in human platelet protein composition after storage at different

Shichun Wang1, Tianlun Jiang1, Yahan Fan1

  • 1a Department of Blood Transfusion , Southwest Hospital, the Third Military Medical University , Chongqing , P.R. China.

Platelets
|March 30, 2018
PubMed

Insights

Storing platelets (PLTs) affects their protein makeup and function. This study used mass spectrometry to reveal how temperature impacts platelet storage lesion (PSL) and identified key proteins and pathways involved.

Area of Science:

  • Biochemistry
  • Hematology
  • Proteomics

Background:

  • Cryopreservation reduces bacterial risk but chilled platelets (PLTs) have reduced circulation post-transfusion.
  • Platelet protein variation is linked to storage-induced damage, but the mechanisms remain unclear.
  • Understanding platelet storage lesion (PSL) is crucial for improving transfusion therapy.

Purpose of the Study:

  • To comprehensively analyze the human platelet proteome under different storage conditions (22°C, 10°C, -80°C).
  • To identify proteins and pathways affected by storage time and temperature.
  • To elucidate the molecular basis of platelet storage lesion (PSL).

Main Methods:

  • Quantitative mass spectrometry (iTRAQ analysis) was used to analyze human PLT proteomes.
  • Samples were stored at different temperatures: 22°C, 10°C, and -80°C.
  • Platelet count, viability, activation markers (CD62P, Annexin V), and aggregation were assessed.

Main Results:

  • Platelet count decreased regardless of storage temperature; viability decreased significantly at low temperatures.
  • CD62P expression increased, particularly at 22°C and 10°C, while phosphatidylserine exposure remained low.
  • Proteomic analysis identified differentially expressed proteins, with membrane proteins like FERMT3, STX4, MYL9, and TAGLN2 playing key roles in PSL.
  • Storage time affected "Endocytosis," "Fc gamma R-mediated phagocytosis," and "Regulation of actin cytoskeleton" pathways.
  • Cold storage impacted "SNARE interactions in vesicular transport" and "Vasopressin-regulated water reabsorption" pathways.

Conclusions:

  • Storage conditions significantly influence platelet proteomic profiles and contribute to PSL.
  • Specific membrane proteins and cellular pathways are critically involved in temperature-dependent platelet degradation.
  • Proteomic insights provide a foundation for understanding PSL mechanisms and developing strategies for improved platelet storage and transfusion efficacy.

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